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When I use the INT_MAX and INT_MIN constants I get -2147483648 ... 2147483647.

But when I try to compute the maximum and minimum values for ints using this function:

static int computeInt(void)
{
    int myInt = 0;
    int min = 0;
    int max = 32;

    for (int i = min; i < max; i++)
    {
        myInt = myInt + pow(2, i);
    }

    myInt = myInt / 2;

    return myInt;
}

I don't get the same number. I think the technical for what happens is that myInt overflows.

Thanks!

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What number do you get? –  bash.d Mar 6 '13 at 11:25
    
when you do pow(2, 31) you cause signed integer overflow. Use larger data type instead, say long. –  SparKot ॐ Mar 6 '13 at 11:26
    
Pow() return double and you casting it to INT –  One Man Crew Mar 6 '13 at 11:29
    
You can compute INT_MAX by doing myInt = (~0)>>1. Then, INT_MIN is - INT_MAX - 1 –  Rerito Mar 6 '13 at 11:37
    
@Rerito: (~0)>>1 has implementation-defined result. It's common for it to be -1 (since implementations commonly do an arithmetic right shift on signed types). That's not actually guaranteed, though, so it could be INT_MAX on some implementations. –  Steve Jessop Mar 6 '13 at 11:56
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4 Answers

It isn't possible to detect the maximum signed integer reliably through arithmetic in this way because as soon as the integer exceeds INT_MAX the result is undefined (it could simply crash).

You can however work out the maximum unsigned integer, as this is guaranteed to wrap around back to 0, i.e. UINT_MAX + 1 is guaranteed to be 0. Similarly, unsigned int a = -1 will equal UINT_MAX.

Since a signed int and unsigned int are guaranteed to use the same amount of storage and alignment, you could divide the calculated UINT_MAX by 2 to get INT_MAX. Therefore:

unsigned int maxint = -1;
maxint /= 2;
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INT_MAX and UINT_MAX are guaranteed to be one less than a power of two and UINT_MAX/2=INT_MAX. This follows from the representation of integers. So, you could compute UINT_MAX and get INT_MAX from it. –  Alexey Frunze Mar 6 '13 at 12:23
    
I thought this myself, but I'm not certain that INT_MAX is guaranteed to be UINT_MAX / 2. If it is, I'll adjust the answer. –  teppic Mar 6 '13 at 12:27
    
There's only one sign bit (per the standard) and padding bits are extinct (in practice). –  Alexey Frunze Mar 6 '13 at 12:35
    
@AlexeyFrunze: I've adjusted the answer. –  teppic Mar 6 '13 at 12:44
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As stated in the previous answers and comments, you have an overflow (even when assuming sizeof(int) = 4. If you want to compute "manually" these constants, you could simply do this :

int myInt = (((unsigned int)(-1)) >> 1);
int myIntMin = -myInt - 1;

This is not trully architecture independent as it assumes that signed integers are represented using 2's complement logic and that there is no padding bit in the integer representation. But in many cases, this should work fine (tested on x86 pc).

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It's not wholly architecture independent. It relies on the implementation being "normal-looking" -- that there are no padding bits in either int or unsigned int, and that int uses 2's complement representation. These assumptions hold on pretty much all C implementations, but the reason the standard provides these constants isn't just to save you remembering the expressions in this answer, it's because they aren't guaranteed to work. –  Steve Jessop Mar 6 '13 at 12:00
    
That's embarrassing, I was not aware of that. I am editing to make it accurate right away. –  Rerito Mar 6 '13 at 12:04
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Yes, you have an overflow because the range for int is from -2^31 to 2^31 - 1 and you try to compute the sum of powers of 2 from 0 to 31. Your final value is the result of: (2^0 + 2^1 + 2^3 + ... + 2^31) / 2 which is obviously greater than 2^31 - 1

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2  
Also, even if the final value was in range (e.g. subtracting an extra 1), there's still a problem that some of the intermediate values used in the working are out of range. –  Steve Jessop Mar 6 '13 at 11:52
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Your assumption is right. Your int overflows, because you keep adding to it. I'm not sure why you're using a loop, when the max int is simply 2^31-1 or pow(2,31)-1.

Using a loop you could do:

for (int i = min; i < max; i++) {
    myInt = myInt * 2;
}
myInt = myInt - 1;

(Note that this loop also results in a temporary overflow. After the last iteration myInt will be -2147483648, but subtracting one will result in 2147483647)

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Don't you mean pow(2,31)-1? –  bash.d Mar 6 '13 at 11:28
    
Yep, typo, thanks. –  DrummerB Mar 6 '13 at 11:28
    
Ahhhhh wow I feel semi retarded. Okay, so what's the minus 1 for? –  papercuts Mar 6 '13 at 11:31
1  
Because with a 4 byte int (=32 bits) you can store 2^32 different numbers. With 2^31 negative numbers + 2^31-1 positive numbers + zero you have 2^32 numbers. –  DrummerB Mar 6 '13 at 11:32
    
You should also check out this article: http://en.wikipedia.org/wiki/Two's_complement –  DrummerB Mar 6 '13 at 11:34
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